A production process for an intelligent wall-mounted human target

By modifying the rubber skin and detection plate structure, the problem of multi-angle adjustment of the sensor is solved, the stable fixation and buffer protection of the sensor is achieved, the assembly process is simplified, and the detection accuracy of the training effect is improved.

CN119858273BActive Publication Date: 2025-07-22ZHANGZHOU TAILIS SPORTS EQUIPMENT CO LTD
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Patent Information

Application Number
CN202510352166.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2025-07-22
Estimated Expiration
2045-03-25

AI Technical Summary

Technical Problem

The existing boxing wall-mounted human body targets require multiple angle adjustments when built-in sensors, which makes processing difficult.

Method used

The skin is made of modified rubber, and a feed port is set at the bottom of the skin. A built-in detection plate is used to fix the sensor. The sensor wire is connected through the injection pipe and the catheter. The sensor position is ensured by using the blank and block structure. The filler is evenly distributed and solidified and connected to the control box.

Benefits of technology

It realizes stable fixation and buffer protection of the sensor, simplifies the assembly process, ensures uniform distribution of the fill, and improves the detection accuracy of the training effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of sports equipment, and particularly to a production process of an intelligent wall-mounted human target, which includes the following steps: manufacturing the epidermis, heating the modified rubber through a baking device to form the epidermis, and arranging a feed port at the bottom of the epidermis for putting in the filler; processing the detection board, the detection board includes a first bottom plate, positioning holes are processed on the surface of the plate body of the first bottom plate, a first limiting groove is opened on the surface of the plate body for fixing the sensor, a flow injection pipe is arranged in the middle of the plate body, a first conduit is also arranged on the surface of the plate body, a second conduit is arranged on one side of the first conduit, the second conduit is connected to the feed port, the first bottom plate and the flow injection pipe are matched through a retaining piece, the first positioning groove on the retaining piece is engaged with the sensor, ensuring the position stability of the sensor during the filling process. The structural design of the flow injection pipe enables the foaming agent to be conveniently guided through the pipeline to the inside of the device for filling. The second conduit is connected to the injection hole of the epidermis, simplifying the filling process.
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Description

Technical Field

[0001] The present invention is a production process of an intelligent wall-mounted human target, belonging to the field of sports equipment. Background Art

[0002] The boxing wall-mounted human target is a piece of equipment designed specifically for boxing training. It can be hung on the wall to facilitate users to practice punching. In the training process, it enables the trainer to better simulate actual combat in an anthropomorphic way for convenient training.

[0003] In order to monitor the training effect, sensors are usually built into the human target to obtain the punching force data, so as to observe whether the trainer's force application is accurate. Since the punching positions are relatively more than those of sandbags or other traditional wall targets, it is necessary to adjust the sensors from multiple angles during installation, and the adjustment difficulty is relatively high during processing. Summary of the Invention

[0004] Aiming at the deficiencies of the existing technology, the purpose of the present invention is to provide a production process of an intelligent wall-mounted human target to solve the above problems.

[0005] In order to achieve the above purpose, the present invention is realized through the following technical solutions: A production process of an intelligent wall-mounted human target includes the following steps:

[0006] S1: Precast the skin. Heat the modified rubber through a baking device to form the skin, and set a feeding port at the bottom of the skin for putting in the filler.

[0007] S2: Process the detection board. The detection board includes a first bottom plate. Positioning holes are processed on the surface of the plate body of the first bottom plate, and a first limiting groove is opened on the surface of the plate body for fixing the sensor. A flow injection pipe is arranged in the middle of the plate body. A first conduit is also arranged on the surface of the plate body. A second conduit is arranged on one side of the first conduit, and the second conduit is connected to the feeding port. The wire of the sensor is led out through a second chuck connected by the second conduit. And a first jet port is opened at the top of the first conduit. When installing, the first jet port needs to be closed by a stop bar.

[0008] S3: Cut open the back of the skin, place the detection board in it, and fix the plate body to the temporary fixing plate through bolts via the positioning holes.

[0009] S4: Place the skin into the mold, and inject the filler through the second conduit. Shake the mold to make the filler evenly distributed.

[0010] S5: After the filler is cured, remove the temporary fixing plate, and connect the wire of the sensor to the control box.

[0011] Preferably, the sensor includes a detection head and a detection column. A guide rod is provided at the bottom of the detection column, and the detection column is connected to an outer frame installed on the surface of the plate body through the guide rod. The surface of the detection column is a multi-faceted structure, and sensors are provided on all surfaces.

[0012] Preferably, a baffle is provided on the surface of the injection tube. First positioning grooves are provided on both sides of the baffle body. The baffle body is nested with the guide rod of the sensor through the first positioning grooves on both sides. A through second positioning groove is provided in the middle of the baffle body, and the second positioning groove is opposite to the first jet port on the surface of the first conduit.

[0013] Preferably, a first clamping block and a second clamping block are provided at the bottom of the first conduit, and the first clamping block and the second clamping block are nested and matched with a second limiting groove opened on the plate body.

[0014] Preferably, a first clamping block and a second clamping block are provided at the bottom of the second bottom plate of the injection tube, and the second bottom plate is connected to the second limiting groove of the plate body through the first clamping block and the second clamping block.

[0015] Preferably, a through groove is provided in the middle of the second clamping block for the second conduit to pass through, and there is a gap between the second clamping block and the second conduit.

[0016] Preferably, a bottom groove is further installed in the middle of the outer frame. The bottom groove is movably connected to the guide rod at the top, and the guide rod is connected to the outer frame through an elastic ring on the surface.

[0017] Preferably, the plate body is made of wood.

[0018] Preferably, a Bluetooth module, a data transmission module, a data conversion module, and a sound module are provided inside the control box.

[0019] Preferably, the second jet ports opened on both sides of the second bottom plate are opposite to the installation positions of the sensors.

[0020] The production process of an intelligent wall-mounted human target of the present invention has the following effects:

[0021] Fixing and buffering of the sensor: By arranging a first bottom plate inside the epidermis and providing a first limiting groove on the plate body on the first bottom plate, the fixed installation of the sensor is realized.

[0022] The sensor is nested with the first limiting groove through the outer frame, ensuring the stability of the installation. An elastic ring is arranged between the sensor and the first bottom plate for buffering. When subjected to a lateral impact, the elastic ring can compress and absorb the impact force, protecting the sensor from damage and being able to detect the force of an oblique punch. Compared with traditional one-way detection, it is more intelligent when in use.

[0023] Convenient assembly of the device: The first base plate and the injection tube are cooperated through a baffle. The first positioning groove on the baffle is engaged with the sensor, ensuring the position stability of the sensor during the filling process. The structural design of the injection tube enables the foaming agent to be conveniently guided through the pipeline into the device for filling. The second conduit is connected to the injection hole of the skin, simplifying the filling process.

[0024] Uniform distribution of the filler: Multiple second jet ports are provided on the injection tube, enabling the foaming agent to be evenly distributed inside the device, ensuring the uniformity and tightness of the filler. The design of the baffle also considers the flow path of the foaming agent during the filling process, ensuring that the filler can fill the position of the sensor. Description of the drawings

[0025] Other features, objects, and advantages of the present invention will become more apparent by reading the following detailed description of non-limiting embodiments with reference to the accompanying drawings:

[0026] Figure 1 It is a schematic structural diagram of a production process of an intelligent wall-mounted human target of the present invention.

[0027] Figure 2 It is a schematic structural diagram of a detection board of the present invention.

[0028] Figure 3 It is a schematic structural diagram of the first base plate of the present invention.

[0029] Figure 4 It is a schematic structural diagram of the injection tube of the present invention.

[0030] Figure 5 It is a schematic structural diagram of the baffle of the present invention.

[0031] Figure 6 It is a schematic cross-sectional structural diagram of the sensor of the present invention.

[0032] Figure 7 It is a schematic cross-sectional structural diagram of the sensor of the present invention.

[0033] In the figure: 1, detection board; 2, filler; 3, skin; 4, fixing plate;

[0034] 11, first base plate; 12, injection tube; 13, baffle;

[0035] 111, plate body; 112, positioning hole; 113, first limiting groove; 114, second limiting groove; 115, sensor;

[0036] 121, first conduit; 122, second base plate; 123, first clamping block; 124, first jet port; 125, bar; 126, second jet port; 127, second clamping block; 128, second conduit;

[0037] 131. Sheet body; 132. First positioning groove; 133. Second positioning groove;

[0038] 151. Detection head; 152. Detection column; 153. Guide rod; 154. Elastic ring; 155. Bottom groove; 156. Outer frame. Specific embodiments

[0039] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention. Therefore, the following detailed description of the embodiments of the present invention provided in the drawings is not intended to limit the scope of the claimed invention, but merely represents selected embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0040] In the description of the present invention, the terms "first" and "second" are used for descriptive purposes only and cannot be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present invention, "a plurality of" means two or more unless otherwise specifically defined.

[0041] When existing human targets are equipped with built-in sensors, they need to be adjusted at multiple angles, and the adjustment is difficult during processing. Therefore, to solve the above problems, the following technical solutions are proposed in this case:

[0042] Please refer to Figures 1 to 7 , the present invention provides a technical solution for the production process of an intelligent wall-mounted human target, including the following steps:

[0043] S1: Pre-fabricate the epidermis 3. Heat the modified rubber through a baking device to form the epidermis 3, and a feed port is provided at the bottom of the epidermis 3 for putting in the filler 2.

[0044] S2: Process the detection board 1. The detection board 1 includes a first bottom plate 11. Positioning holes 112 are processed on the surface of the plate body 111 of the first bottom plate 11. A first limiting groove 113 is formed on the surface of the plate body 111 for fixing the sensor 115. A flow injection pipe 12 is arranged in the middle of the plate body 111. A first conduit 121 is also arranged on the surface of the plate body 111. A second conduit 128 is arranged on one side of the first conduit 121. The second conduit 128 is connected to the feed inlet. The wire of the sensor 115 is led out through a second fixture block 127 connected to the second conduit 128. And a first jet port 124 is opened at the top of the first conduit 121. During installation, the first jet port 124 needs to be closed by a stop bar 125.

[0045] S3: Cut open the back of the skin 3, place the detection board 1 into it, and the plate body 111 is fixed to the temporary fixing plate through the positioning holes 112 by bolts.

[0046] S4: Place the skin 3 into the mold, and inject the filler 2 through the second conduit 128. Shake the mold to make the filler 2 evenly distributed.

[0047] S5: After the filler 2 is cured, remove the temporary fixing plate, and connect the wire of the sensor 115 to the control box.

[0048] When in use, the main structure of this device includes the skin 3, and the filler 2 is arranged inside the skin 3. Specifically, the filler 2 is made of a foaming material, which will expand after injection and then fill the skin 3. A detection board 1 is arranged inside the skin 3. The detection board 1 is used to fix the sensor 115 to improve the stability of positioning. A fixing plate 4 is also installed on the back of the skin 3. Through the fixing plate 4, the skin 3 can be integrally installed on the wall for convenient training.

[0049] The structure of the detection board 1 includes a first bottom plate 11. A flow injection pipe 12 is arranged in the middle of the first bottom plate 11. A baffle 13 is arranged between the first bottom plate 11 and the flow injection pipe 12. Specifically, the structure of the first bottom plate 11 includes a plate body 111. Positioning holes 112 and a first limiting groove 113 are arranged on the surface of the plate body 111. A second limiting groove 114 fixed to the flow injection pipe 12 is arranged in the middle of the plate body 111. The plate body 111 is fixedly connected to the sensor 115 through the first limiting groove 113. The first limiting groove 113 is used to position the installation position of the sensor 115. It is installed in an embedded manner and can be adjusted according to needs, which is more convenient in use. The positioning holes 112 are for connecting to the fixing plate 4 by bolts. The second limiting groove 114 is fixed to the flow injection pipe 12 in a nested manner for easy assembly.

[0050] The structure of the injection tube 12 includes a second bottom plate 122, and a first conduit 121 is provided on the surface of the second bottom plate 122. Second jet ports 126 are provided on both sides of the first conduit 121, and a first jet port 124 is provided on the top. The first jet port 124 is closed through a second conduit 128. The first conduit 121 is connected to the second conduit 128, and the second conduit 128 is connected to the injection hole of the epidermis 3. The filler 2 is guided to move through the pipeline formed by the second conduit 128 and the first conduit 121. The second jet ports 126 of the first conduit 121 are opposite to the sensors 115 arranged on the side, and in order to enable the filler 2 to fill the position of the sensors 115, a baffle 13 is arranged between the injection tube 12 and the sensors 115 for cooperation.

[0051] On both sides of the sheet body 131 of the baffle 13, there are first positioning grooves 132 for engaging with the sensors 115. A second positioning groove 133 is provided on the top of the sheet body 131, which is opposite to the position of the first jet port 124. When the foaming agent is injected through the second conduit 128, the foaming agent flows through the second bottom plate 122 and overflows through the second jet ports 126 when the flow rate is small. The foaming agent moves on the bottom surface of the sheet body 131 to fill the gap between the sensors 115 and the plate body 111, so that the sensors 115 and the plate body 111 can be fastened. During boxing training, the sensors 115 can be buffered under the support of the filler 2 to avoid damage.

[0052] Among them, on both sides of the second bottom plate 122, there are card slots through which the wires can be fixed and then enter the gap between the second clamping block 127 and the second conduit 128, facilitating wire routing. The first clamping block 123 fixed on the other side of the second bottom plate 122 plays a limiting role. The strip 125 located on the top of the first jet port 124 is nested and matched with the first jet port 124. When the flow rate of the foaming agent increases, the strip 125 is pushed out to increase the flow rate of the foaming agent, enabling it to quickly fill the inside of the epidermis 3 to fill the epidermis 3.

[0053] The structure of the sensor 115 includes an outer frame 156, which is used for nesting with the first limiting groove 113. A bottom groove 155 is provided in the middle of the outer frame 156, and a groove is provided in the middle of the bottom groove 155 to cooperate with the guide rod 153. An elastic ring 154 is arranged between the guide rod 153 and the outer frame 156 for buffering. When subjected to a lateral impact, the elastic ring 154 is compressed laterally, thereby buffering. A detection column 152 is provided on the top of the guide rod 153. The detection column 152 uses a pressure sensor and is specifically provided with a plurality of strain gauges. On the top of the detection column 152, a detection head 151 matching the shape of the detection column 152 is provided. The impact is detected through the detection head 151, and then the pressure sensor of the detection column 152 is triggered to generate a value to achieve a better detection effect.

[0054] Improved advantages of this device:

[0055] Fixing and buffering of the sensor: By arranging a first bottom plate 11 inside the epidermis 3 and providing a first limiting groove 113 on the plate body 111 of the first bottom plate 11, the fixed installation of the sensor 115 is achieved.

[0056] The sensor 115 is nested with the first limiting groove 113 through an outer frame 156, ensuring the stability of the installation. An elastic ring 154 is arranged between the sensor 115 and the first bottom plate 11 for buffering. When subjected to a lateral impact, the elastic ring 154 can compress and absorb the impact force, protecting the sensor 115 from damage.

[0057] Convenient assembly of the device: The first bottom plate 11 and the injection tube 12 are cooperated through a retaining piece 13. The first positioning groove 132 on the retaining piece 13 is engaged with the sensor 115, ensuring the position stability of the sensor 115 during the filling process. The structural design of the injection tube 12 enables the foaming agent to be conveniently guided through the pipeline into the device for filling. The second conduit 128 is connected to the injection hole of the epidermis 3, simplifying the filling process.

[0058] Uniform distribution of the filler: A plurality of second jet ports 126 are arranged on the injection tube 12, enabling the foaming agent to be evenly distributed inside the device, ensuring the uniformity and tightness of the filler. The design of the retaining piece 13 also considers the flow path of the foaming agent during the filling process, ensuring that the filler can fill the position of the 1 sensor 15.

[0059] Only the basic principles and preferred embodiments of the present invention are described above. Those skilled in the art can make many changes and improvements according to the above description, and these changes and improvements should fall within the protection scope of the present invention.

[0060] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A production process of an intelligent wall-mounted human target, characterized in that: It includes the following steps: S1: Pre-fabricate the skin (3). Heat the modified rubber through a baking device to form the skin (3), and set a feeding port at the bottom of the skin (3) for putting in the filler (2); S2: Process the detection plate (1). The detection plate (1) includes a first bottom plate (11). Positioning holes (112) are provided on the surface of the plate body (111) of the first bottom plate (11). A first limiting groove (113) is formed on the surface of the plate body (111) for fixing the sensor (115). A flow injection pipe (12) is arranged in the middle of the plate body (111). The flow injection pipe (12) includes a second bottom plate (122). A first conduit (121) is arranged on the surface of the second bottom plate (122). A first jet port (124) is arranged at the top of the first conduit (121). Second jet ports (126) are arranged on both sides of the first conduit (121). A second conduit (128) is arranged at one end of the first conduit (121). The second conduit (128) is connected to the feeding port. The wire of the sensor (115) is led out through a second chuck (127) connected to the second conduit (128). The first jet port (124) is closed by a bar (125). A baffle (13) is arranged on the surface of the flow injection pipe (12). First positioning grooves (132) are arranged on both sides of the plate body (131) of the baffle (13). The plate body (131) is clamped with the sensor (115) through the first positioning grooves (132) on both sides; S3: Cut open the back of the skin (3), place the detection plate (1) in it, and fix the plate body (111) to the temporary fixing plate through bolts via the positioning holes (112); S4: Place the skin (3) inside the mold, and inject the filler (2) through the second conduit (128). Shake the mold to make the filler (2) evenly distributed; S5: After the filler (2) is cured, remove the temporary fixing plate, and connect the wire of the sensor (115) to the control box.

2. The production process of an intelligent wall-mounted human target according to claim 1, characterized in that: The sensor (115) includes a detection head (151) and a detection column (152). A guide rod (153) is arranged at the bottom of the detection column (152). The detection column (152) is connected to an outer frame (156) installed on the surface of the plate body (111) through the guide rod (153). The surface of the detection column (152) is a multi-faceted structure, and sensors are arranged on all surfaces.

3. The production process of an intelligent wall-mounted human target according to claim 2, characterized in that: The plate body (131) is nested with the guide rod (153) of the sensor (115) through the first positioning grooves (132) on both sides. A through second positioning groove (133) is arranged in the middle of the plate body (131). The second positioning groove (133) is opposite to the first jet port (124) on the surface of the first conduit (121).

4. The production process of an intelligent wall-mounted human target according to claim 3, characterized in that: A first chuck (123) and a second chuck (127) are arranged at the bottom of the second bottom plate (122) of the flow injection pipe (12). The second bottom plate (122) is connected to a second limiting groove (114) formed on the surface of the plate body (111) through the first chuck (123) and the second chuck (127).

5. The production process of an intelligent wall-mounted human target according to claim 4, characterized in that: A through groove is provided in the middle of the second clamping block (127) for the penetration of the second conduit (128), and a gap exists between the second clamping block (127) and the second conduit (128).

6. The production process of an intelligent wall-mounted human target according to claim 2, characterized in that: A bottom groove (155) is further installed in the middle of the outer frame (156). The bottom groove (155) is movably connected to the guide rod (153) at the top. The guide rod (153) is connected to the outer frame (156) through the elastic ring (154) on its surface.

7. The production process of an intelligent wall-mounted human target according to claim 1, characterized in that: The plate body (111) is made of wood board.

8. The production process of an intelligent wall-mounted human target according to claim 1, characterized in that: A Bluetooth module, a data transmission module, a data conversion module, and a sound module are provided inside the control box.

9. The production process of an intelligent wall-mounted human target according to claim 4, characterized in that: The second jet ports (126) formed on both sides of the second bottom plate (122) are opposite to the installation positions of the sensors (115).

Citation Information

Patent Citations

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    CN108638417A

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    CN220360691U